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On the estimation of characteristic indoor air quality parameters using analytical and numerical methods

机译:用解析和数值方法估算室内特征空气质量参数

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Indoor exposure to air contaminants penetrating from the outdoor environment depends on a number of key processes and parameters such as the ventilation rate, the geometric characteristics of the indoor environment, the outdoor concentration and the indoor removal mechanisms. In this study two alternative methods are used, an analytical and a numerical one, in order to study the time lag and the reduction of the variances of the indoor concentrations, and to estimate the deposition rate of the air contaminants in the indoor environment employing both indoor and outdoor measurements of air contaminants. The analytical method is based on a solution of the mass balance equation involving an outdoor concentration pulse which varies sinusoidally with the time, while the numerical method involves the application of the MIAQ indoor air quality model assuming a triangular pulse. The ratio of the fluctuation of the indoor concentrations to the outdoor ones and the time lag were estimated for different values of the deposition velocity, the ventilation rate and the duration of the outdoor pulse. Results have showed that the time lag between the indoor and outdoor concentrations is inversely proportional to the deposition and ventilation rates, while is proportional to the duration of the outdoor pulse. The decrease of the ventilation and the deposition rate results in a rapid decrement of the variance ratio of indoor to outdoor concentrations and to an increment of the variance ratio, respectively. The methods presented here can be applied for gaseous species as well as for particulate matter. The nomograms and theoretical relationships that resulted from the simulation results and the analytical methods respectively were used in order to study indoor air phenomena. In particular they were used for the estimation of SO_2 deposition rate. Implications of the studied parameters to exposure studies were estimated by calculating the ratio of the indoor exposure to the exposure outdoors. Limitations of the methods were explored by testing various scenarios which are usually met in the indoor environment. Strong indoor emissions, intense chemistry and varying ventilation rates (opening and closing of the windows) were found to radically influence the time lag and fluctuation ratios.
机译:室内暴露于从室外环境渗透而来的空气污染物取决于许多关键过程和参数,例如通风速率,室内环境的几何特征,室外浓度和室内清除机制。在这项研究中,使用了两种替代方法,一种是分析方法,另一种是数值方法,目的是研究时滞和室内浓度方差的减小,并使用这两种方法估算室内环境中空气污染物的沉积速率。室内和室外的空气污染物测量。该分析方法基于质量平衡方程的解,该质量平衡方程涉及一个随时间呈正弦变化的室外浓度脉冲,而数值方法则涉及应用一个假定为三角脉冲的MIAQ室内空气质量模型。针对沉积速度,通风速率和室外脉冲持续时间的不同值,估算了室内浓度与室外浓度的波动比和时间滞后。结果表明,室内和室外浓度之间的时滞与沉积和通风速率成反比,而与室外脉冲的持续时间成正比。通风量和沉积速率的降低分别导致室内与室外浓度的变化率迅速减小,并且导致变化率增大。这里介绍的方法可以应用于气态物质以及颗粒物。为了研究室内空气现象,分别使用了模拟结果和分析方法得到的列线图和理论关系。特别地,它们被用于估计SO 2沉积速率。通过计算室内暴露量与室外暴露量之比,可以估算所研究参数对暴露量研究的影响。通过测试通常在室内环境中遇到的各种情况来探索方法的局限性。人们发现强烈的室内排放物,强烈的化学物质和不同的通风速率(窗户的打开和关闭)对时滞和波动率有根本影响。

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